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Nonlinear inverse optimization for parameter estimation of commodity-vehicle-decoupled freight assignment
Affiliation:1. Department of Industrial Engineering, TOBB University of Economics and Technology, Söğütözü Caddesi No:43, Söğütözü, 06560, Ankara, Turkey;2. Department of Industrial Engineering, Koc University, Rumelifeneri Yolu, Sarıyer, 34450, Istanbul, Turkey;3. School of Management, University of Bath, Bath, BA1 7AY, UK
Abstract:A systematic approach to estimate parameters from noisy priors is proposed for traffic assignment problems. It extends inverse optimization theory to nonlinear problems, and defines a new class of parameter estimation problems in the transportation literature for networks under congestion. The approach is used to systematically calibrate a new link-based variation of the STAN model which decouples commodity flows and vehicle flows. The models are tested on a small network and then a case study with real data from California statewide implementation. Cross-validation shows 15% CV of the RMSE.
Keywords:Nonlinear optimization  Transshipment  Freight forecast  Inverse optimization  Network assignment
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